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用于神经形态和量子比特应用的图案化纳米结构中斯格明子材料和手性磁构型的微磁设计。

Micromagnetic Design of Skyrmionic Materials and Chiral Magnetic Configurations in Patterned Nanostructures for Neuromorphic and Qubit Applications.

作者信息

One Roxana-Alina, Mican Sever, Cimpoeșu Angela-Georgiana, Joldos Marius, Tetean Romulus, Tiușan Coriolan Viorel

机构信息

Department of Condensed Matter Physics and Advanced Technologies, Faculty of Physics, Babeș-Bolyai University of Cluj-Napoca, 400084 Cluj-Napoca, Romania.

Computer Science Department, Faculty of Automation and Computer Science, Technical University of Cluj-Napoca, 400027 Cluj-Napoca, Romania.

出版信息

Nanomaterials (Basel). 2022 Dec 10;12(24):4411. doi: 10.3390/nano12244411.

Abstract

Our study addresses the problematics of magnetic skyrmions, nanometer-size vortex-like swirling topological defects, broadly studied today for applications in classic, neuromorphic and quantum information technologies. We tackle some challenging issues of material properties versus skyrmion stability and manipulation within a multiple-scale modeling framework, involving complementary ab-initio and micromagnetic frameworks. Ab-initio calculations provide insight into the anatomy of the magnetic anisotropy, the Dzyaloshinskii-Moriya asymmetric exchange interaction (DMI) and their response to a gating electric field. Various multi-layered heterostructures were specially designed to provide electric field tunable perpendicular magnetization and sizeable DMI, which are required for skyrmion occurrence. Landau-Lifshitz-Gilbert micromagnetic calculations in nanometric disks allowed the extraction of material parameter phase diagrams in which magnetic textures were classified according to their topological charge. We identified suitable ranges of magnetic anisotropy, DMI and saturation magnetization for stabilizing skyrmionic ground states or writing/manipulating them using either a spin-transfer torque of a perpendicular current or the electric field. From analyzing the different contributions to the total magnetic free energy, we point out some critical properties influencing the skyrmions' stability. Finally, we discuss some experimental issues related to the choice of materials or the design of novel magnetic materials compatible with skyrmionic applications.

摘要

我们的研究探讨了磁性斯格明子的相关问题,磁性斯格明子是纳米尺寸的涡旋状拓扑缺陷,如今在经典、神经形态和量子信息技术应用方面得到了广泛研究。我们在一个多尺度建模框架内解决了一些关于材料特性与斯格明子稳定性及操控性的具有挑战性的问题,该框架涉及互补的从头算和微磁框架。从头算计算能够深入了解磁各向异性的结构、Dzyaloshinskii-Moriya非对称交换相互作用(DMI)以及它们对门控电场的响应。我们专门设计了各种多层异质结构,以提供电场可调的垂直磁化强度和可观的DMI,这是斯格明子出现所必需的。在纳米盘中进行的Landau-Lifshitz-Gilbert微磁计算能够提取材料参数相图,其中磁纹理根据其拓扑电荷进行分类。我们确定了合适的磁各向异性、DMI和饱和磁化强度范围,以稳定斯格明子基态或使用垂直电流的自旋转移转矩或电场来写入/操控它们。通过分析对总磁自由能的不同贡献,我们指出了一些影响斯格明子稳定性的关键特性。最后,我们讨论了一些与材料选择或与斯格明子应用兼容的新型磁性材料设计相关的实验问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ea9c/9782460/2362056a4f8b/nanomaterials-12-04411-g029.jpg

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